Abstract:
An electrochromic device includes a first substrate, a second substrate facing the first substrate, a first electrode disposed on the first substrate, a carbon nano-structured electrode layer disposed on the first electrode, a second electrode disposed on the second substrate, an electrochromic layer disposed on the second electrode, and an electrolyte layer interposed between the first substrate and the second substrate.
Abstract:
An electrochromic device includes a first electrode, a second electrode disposed opposite the first electrode, a porous electrochromic layer disposed on the first electrode or the second electrode, and an electrolyte disposed between the first electrode and the second electrode. The porous electrochromic layer includes different sized nanoparticle clusters, and each nanoparticle cluster includes a plurality of nanoparticles and an electrochromic material.
Abstract:
Disclosed is an electrochromic material including a compound represented by Chemical Formula 1 and an electrochromic device including the electrochromic material. In Chemical Formula 1, R1, R2, L1, and L2 are as defined in the detailed description.
Abstract:
An electrochromic material including a metal-organic framework including a metal, and an organic compound including a functional group, wherein the organic compound forms a coordination complex with the metal.
Abstract:
A method of fabricating a thin film transistor (TFT) substrate includes forming a gate line and a data line on an insulating substrate. The data line crosses the gate line and is insulated from the gate line. The formation of the gate line, the data line, or both the gate line and the data line includes forming a low-resistive conductive pattern on a base pattern using an electroless plating method.
Abstract:
An electrochromic compound represented by the following Chemical Formula 1: Also disclosed is an electrochromic device including the electrochromic compound.
Abstract:
An electrochromic device includes a first electrode, a second electrode opposing the first electrode, a first electrochromic layer, a second electrochromic layer, and an electrolyte contacted with the first and second electrochromic layers. The first and second electrochromic layers are positioned between the first electrode and the second electrode and includes different electrochromic materials. The first and second electrochromic layers are simultaneously n-type or simultaneously p-type. The electrochromic device may display transparency and various colors in a single pixel without using plural sub-pixels.
Abstract:
Disclosed herein are novel electrochromic materials. The electrochromic materials are viologens into which an imidazole derivative is asymmetrically introduced. The electrochromic materials can be used in a variety of electrochromic displays, including electrochromic windows and smart windows. Also disclosed herein are electrochromic devices that use the electrochromic materials.